EP3078223A1 - Self-organized distributed assignment, optimization, and use of physical cell ids - Google Patents
Self-organized distributed assignment, optimization, and use of physical cell idsInfo
- Publication number
- EP3078223A1 EP3078223A1 EP14809804.9A EP14809804A EP3078223A1 EP 3078223 A1 EP3078223 A1 EP 3078223A1 EP 14809804 A EP14809804 A EP 14809804A EP 3078223 A1 EP3078223 A1 EP 3078223A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- cells
- values
- physical cell
- base station
- pairs
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
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Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/02—Arrangements for optimising operational condition
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/50—Allocation or scheduling criteria for wireless resources
- H04W72/54—Allocation or scheduling criteria for wireless resources based on quality criteria
- H04W72/541—Allocation or scheduling criteria for wireless resources based on quality criteria using the level of interference
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/08—Testing, supervising or monitoring using real traffic
Definitions
- This invention relates generally to wireless communication and, more specifically, relates to physical layer cell identifications used in networks.
- the Physical Layer Cell ID (PCI) is used by a User Equipment (UE) to distinguish between different cells of the same center frequency as the UE makes cell measurements. Therefore, neighboring cells of the same center frequency should not have the same PCI values so that the UE can distinguish between all of the neighbor cells. That is, a same PCI collision, where two cells have the same PCI, is avoided.
- the PCIs of the nearby cells reported by the UE to the cell are used by the cell for some RRM procedures such as handovers. This requires neighbor-of-neighbor cells of the same center frequency to not have the same PCI values (i.e., the same-PCI collision or confusion must be avoided). Since the number of PCIs is limited to 0 (zero) to 503 values and same-PCI collisions and confusions must be avoided, PCI assignment is considered to be one of the most tedious phases in LTE RAN planning and optimization.
- CRS-to-PDSCH interference even with Block Error Rate (BLER)-based Channel Quality Indicator (CQI) correction.
- BLER Block Error Rate
- CQI Channel Quality Indicator
- the CRS-to-CRS interference also potentially leads to poorer call success rates, handover success rates, and other KPIs.
- PCI modulo 3 value also produces the same Physical Synchronization Signal (PSS) Sequence. Interference among the PSS leads to poorer detection of the presence of neighbor cells. To avoid interference between the CRSs and misdetection of the PSS, it is desirable for neighboring cells of the same center frequency to have different PCI modulo 3.
- PSS Physical Synchronization Signal
- An exemplary method includes: determining, at a base station in a wireless network, interference for a plurality of pairs of cells, wherein each pair of cells is between an individual one of one or more serving cells formed by the base station and an individual one of other cells that surround the one or more serving cells; and allocating, at the base station, values for physical cell identifications for the one or more serving cells based on the interference for the plurality of pairs of cells.
- An additional exemplary embodiment includes a computer program, comprising code for performing the method of the previous paragraph, when the computer program is run on a processor.
- An exemplary apparatus includes one or more processors and one or more memories including computer program code.
- the one or more memories and the computer program code are configured to, with the one or more processors, cause the apparatus to perform at least the following: determining, at a base station in a wireless network, interference for a plurality of pairs of cells, wherein each pair of cells is between an individual one of one or more serving cells formed by the base station and an individual one of other cells that surround the one or more serving cells; and allocating, at the base station, values for physical cell identifications for the one or more serving cells based on the interference for the plurality of pairs of cells.
- the apparatus comprises: means for determining, at a base station in a wireless network, interference for a plurality of pairs of cells, wherein each pair of cells is between an individual one of one or more serving cells formed by the base station and an individual one of other cells that surround the one or more serving cells; and means for allocating, at the base station, values for physical cell identifications for the one or more serving cells based on the interference for the plurality of pairs of cells.
- An exemplary computer program product includes a computer-readable storage medium bearing computer program code embodied therein for use with a computer.
- the computer program code includes: code for determining, at a base station in a wireless network, interference for a plurality of pairs of cells, wherein each pair of cells is between an individual one of one or more serving cells formed by the base station and an individual one of other cells that surround the one or more serving cells; and code for allocating, at the base station, values for physical cell identifications for the one or more serving cells based on the interference for the plurality of pairs of cells.
- FIG. 1 is a block diagram of an exemplary system in which the exemplary embodiments may be practiced
- FIG. 2 is a block diagram of an exemplary configuration of a target eNB connected to UEs and neighbor eNBs for self-organized distributed optimization of physical cell IDs;
- FIG. 3A is an example of a network using centralized PCI optimization
- FIG. 3B is an example of a network using self-organized distributed PCI optimization
- FIG. 4 is a signaling diagram of a PCI optimization method diagram for an example of a pre-allocation phase
- FIGS. 5A and 5B are signaling diagrams of a PCI-allocation procedure
- FIG. 6 is a block diagram of an exemplary configuration of a target eNB connected to UEs and neighbor eNBs for self-organized distributed optimization of physical cell IDs and for illustrating PCI solution constraints
- FIG. 7 is a logic flow diagram for using physical cell IDs, and illustrates the operation of an exemplary method, a result of execution of computer program instructions embodied on a computer readable memory, functions performed by logic implemented in hardware, and/or interconnected means for performing functions in accordance with an exemplary embodiment;
- FIG. 8 is a logic flow diagram for self-organized distributed assignment of physical cell IDs, and illustrates the operation of an exemplary method, a result of execution of computer program instructions embodied on a computer readable memory, functions performed by logic implemented in hardware, and/or interconnected means for performing functions in accordance with an exemplary embodiment.
- the user equipment 1 10-1 includes one or more processors 120, one or more memories 125, and one or more transceivers 130 (each comprising one or more transmitters, Tx, and one or more receivers, Rx) interconnected through one or more buses 127.
- the one or more transceivers 130 are connected to one or more antennas 128.
- the one or more buses 127 may be any suitable connection between elements, such as traces on a board, conductive elements on a semiconductor, optical elements, and the like.
- the one or more memories 125 include computer program code 123.
- the one or more memories 125 and the computer program code 123 are configured to, with the one or more processors 120, cause the user equipment 1 10 to perform operations.
- the UEs 1 10 communicate with eNB 180 via corresponding links 1 1 1 1 -1 through 1 1 1 -X.
- eNB 180 There is a single eNB 180 and multiple (N) neighbor eNBs 181 shown. It is assumed that the eNBs 180 and 181 are similar and therefore only an exemplary internal implementation of eNB 180 is shown.
- the eNB 180 includes one or more processors 150, one or more memories 155, one or more network interfaces (N/W l/F(s)) 161 , and one or more transceivers 160 (each comprising one or more transmitters, Tx, and one or more receivers, Rx) interconnected through one or more buses 157.
- the one or more buses 157 may be any suitable connection between elements, such as traces on a board, conductive elements on a semiconductor, optical elements, and the like.
- the one or more transceivers 160 are connected to one or more antennas 158.
- the one or more memories 155 include computer program code 153.
- the one or more memories 155 and the computer program code 153 are configured to, with the one or more processors 150, cause the eNB 180 to perform one or more of the operations as described herein.
- the one or more network interfaces 161 communicate over a network such as the networks 170 and 131 .
- Two or more eNBs 180 communicate using, e.g., network 170.
- the network 170 may be wired or wireless or both and may implement, e.g., an X2 interface.
- the wireless network 100 may include a network control element (NCE) 190 that may include MME/SGW functionality, and which provides connectivity with a further network, such as a telephone network and/or a data communications network (e.g., the Internet).
- the eNBs 180 and 181 are coupled via a network 131 to the NCE 190 (e.g., or other NCEs 190 not shown).
- the network 131 may be implemented as, e.g., an S1 interface.
- the NCE 190 includes one or more processors 175, one or more memories 171 , and one or more network interfaces (N/W l/F(s)) 179, interconnected through one or more buses 185.
- the one or more memories 171 include computer program code 173.
- the one or more memories 171 and the computer program code 173 are configured to, with the one or more processors 175, cause the NCE 190 to perform one or more operations.
- the computer readable memories 125, 155, and 171 may be of any type suitable to the local technical environment and may be implemented using any suitable data storage technology, such as semiconductor based memory devices, flash memory, magnetic memory devices and systems, optical memory devices and systems, fixed memory and removable memory.
- the processors 120, 150, and 175 may be of any type suitable to the local technical environment, and may include one or more of general purpose computers, special purpose computers, microprocessors, digital signal processors (DSPs) and processors based on a multi-core processor architecture, as non-limiting examples.
- the various embodiments of the user equipment 1 10 can include, but are not limited to, cellular telephones such as smart phones, personal digital assistants (PDAs) having wireless communication capabilities, portable computers having wireless communication capabilities, image capture devices such as digital cameras having wireless communication capabilities, gaming devices having wireless communication capabilities, music storage and playback appliances having wireless communication capabilities, Internet appliances permitting wireless Internet access and browsing, tablets with wireless communication capabilities, as well as portable units or terminals that incorporate
- cellular telephones such as smart phones, personal digital assistants (PDAs) having wireless communication capabilities, portable computers having wireless communication capabilities, image capture devices such as digital cameras having wireless communication capabilities, gaming devices having wireless communication capabilities, music storage and playback appliances having wireless communication capabilities, Internet appliances permitting wireless Internet access and browsing, tablets with wireless communication capabilities, as well as portable units or terminals that incorporate
- PDAs personal digital assistants
- portable computers having wireless communication capabilities
- image capture devices such as digital cameras having wireless communication capabilities
- gaming devices having wireless communication capabilities
- music storage and playback appliances having wireless communication capabilities
- Internet appliances permitting wireless Internet access and browsing, tablets with
- PCT/EP2012/074346 (publication WO2014086394), entitled “Algorithm for Physical Cell Identifier Allocation", filed Dec. 4, 2012, by Ian Garcia, may be considered to describe a problem formulation for the optimization of PCIs. By following this problem formulation, optimized PCIs can be found efficiently.
- PCT/EP2012/074346 may be considered to build on the optimization framework proposed in PCT/EP2012/074352 by defining an optimization problem with a reduced search space so that the search is efficiently performed.
- the methods may require a centralized unit to collect the data and re-assign the PCIs, which adds to the cost and complexity of the network.
- the methods may simultaneously jointly-optimize the PCIs across all the cells.
- the large solution search space involved requires a powerful search algorithm (e.g., Simulated Annealing; Genetic Algorithm) to obtain a good result, even for a small commercial network.
- the PCI values can only take values 0 (zero) to 503, same-PCI collisions and confusion must be avoided, and data from all the cells are required, centralized PCI re-assignment can only be performed periodically.
- the exemplary embodiments herein modify the PCIs of the cells of a network to avoid these conditions in order to improve the network performance such as throughput and call success rate.
- the exemplary embodiments improve on earlier methods at least by, e.g., allowing for the optimization of all the PCIs in a network in a distributed manner, eliminating any need for a centralized unit, and allowing for greater flexibility and autonomy of the optimization operation.
- the processes 210 and 220 may also be implemented as logic in circuitry, such as an integrated circuit or programmable device such as a programmable logic device, e.g., implemented as part of the one or more processors 150 or separate circuitry.
- the processes 210 and 220 may be implemented as some combination of code and circuitry.
- the data collector process 210 collects data about the RRC connected UEs 1 10 of the target eNB 180 and also neighbor eNBs 181 of the target eNB 180.
- each eNB 180 optimizes its own cells based on X2 neighbor lists and signal-strength-based metrics the eNB 180 gathers from its cells and its neighbor cells 181.
- the optimization procedure for each eNB 180 may be configured to start at a specified time or a random time within a specified interval, and can be repeated
- the eNB 180 When an eNB 180 is scheduled for optimization, the eNB first waits in an exemplary embodiment for other cells to finish their optimization step before the eNB 180 begins its own optimization.
- the eNB optimizes its own PCIs based from the interference the eNB 180 can receive and incur on cells from other nearby eNBs. That is, the target eNB 180 causes interference to neighbor cells 181 , and the target eNB 180 measures interference from neighbor cells 181 (as the neighbor cells 181 also measure interference from the target cell 180).
- the interference is a metric that may be collected by the data collector process 210.
- the eNB 180 may use X2 neighbor lists to ensure that same-PCI confusion and collisions are avoided.
- the eNB 180 also may use the signal-strength-based measurements (as collected by the data collector process 210) to minimize the CRS/DMRS/PSS collisions, and to eliminate same-PCI conditions of nearby cells which are not in the neighbor list.
- the local optimization e.g., performed by the PCI allocation process 220
- the exemplary proposed optimization method is self-organized. Since this technique allows each eNB to optimize its own PCI "on-the-fly," LTE can be more easily deployable and "self-optimizable.”
- FIG. 3A is an example of a network using centralized PCI optimization
- FIG. 3B is an example of a network using
- the centralized unit 310 collects neighbor lists and measurements from all cells 320 (each of which has an eNB 380). The centralized unit 310 re-assigns the PCI for all or a group of cells 320.
- each eNB 180 collects a neighbor list and measurements from its own cells 330 and neighbor cells 340 (each of which has an eNB 181 and is within some range 350 from the eNB 180).
- the target eNB 180 has six neighbor cells 181 -1 through 181-6 and their corresponding cells 340-1 through 340-6.
- the eNB 180 re-assigns PCI for its own cells. Note that FIG.
- GTM 0 ' 3 has + 3 ⁇ 4T nd ' nB rows and three columns.
- column j has a value of 1 for row i if the candidate PCI of cell i has a modulo of j - I .
- This matrix "groups" the cells which have the PCI mod 3 by forcing them to be equal to 1 on the same column and zero on other columns.
- Trace( ) is used to sum all the elements of r neigh ourhood and G mod3 ⁇ In other words, Trace ( ) collects the sum of the diagonal elements of (GTM°* 3 ) T r nei9hboumood G z mod3 to give the total penalty of candidate solution z, in terms of ISR.
- Equation (8) is determined by the GTM ode that makes Equation (8) true (e.g., the G ⁇ 6 that minimizes Trace ( ) over z).
- Equation (10) e.g., the G ⁇ od30 that minimizes Trace ( ) over z.
- the y'th element of Z is given by, 1 cell i and j are X2 neighbours or X2 neighbour-of-neighbours
- Equation (13) p opt is determined by the G z that makes Equation (13) true.
- FIG. 6 is a block diagram of an exemplary configuration of a target eNB connected to UEs and neighbor eNBs for self-organized distributed optimization of physical cell IDs and for illustrating PCI solution constraints.
- the general PCI solution e.g., from Equation (13) and illustrated as PCI allocation 640 in FIG. 6
- PCI mod 30 solution e.g., from Equation (10) and illustrated as PCI mod 30 allocation 630 in FIG. 6
- the PCI mod 30 solution which is to avoid uplink DMRS interference, may be constrained by the PCI mod 6 solution (e.g., from Equation (8) and illustrated as PCI mod 6 allocation 620 in FIG.
- the PCI mod 6 solution is to avoid downlink CRS collision under single Tx mode. Furthermore, the PCI mod 6 solution may be constrained by the PCI mod 3 solution. The PCI mod 3 solution is to avoid downlink CRS collision under MIMO Tx mode and to avoid collision of primary synchronization signals. Each of these PCI allocations acts as a precondition to reduce a search space for the following PCI allocation.
- the PCI mod 3 allocation 610 acts as a precondition to reduce a search space for the PCI mod 6 allocation 620
- the PCI mod 6 allocation 620 (or PIC mod 3 allocation 610) acts as a precondition to reduce a search space for the PCI mod 30 allocation 630
- the PCI mod 30 allocation 610 acts as a precondition to reduce a search space for the general PCI solution
- the PCI allocation 640 The neighbourhood ISR matrix 650, r neighbourhood (t), is also illustrated in FIG. 6, as is the X2 neighbor adjacency matrix 660.
- Applying the optimized PCIs may be automated, or may require a user prompt to proceed.
- step 12 the eNB 180, if the PCI value of any of its cells changes, reports new PCIs to all neighbor eNBs 181 .
- step 13 the eNB 180 informs the neighbor eNBs that the eNB 180 has finished its PCI allocation phase. This step is optional. [0082] In step 14, the eNB 180 restarts the procedure from step 1 (in FIG. 4).
- matrix-based mathematical notation e.g., Trace(A)
- Trace(A) matrix-based mathematical notation
- An exemplary advantage of a centralized optimization approach over a distributed approach as herein is that the centralized optimization approach can potentially arrive at fewer CRS/PSS/DMRS collisions for the entire network, since the centralized optimization approach has a larger search space to try to find the globally optimum allocation.
- the distributed approach herein can still provide substantial gains in removing CRS/PSS/DMRS collisions over a non-optimized network, and same PCI collisions and confusions are still guaranteed to be avoided.
- LTE capacity is required to increase several hundred-fold over the next decade.
- many LTE networks would be densely deployed and heterogeneous, which means that a network would be composed of large-sized cells (i.e., macro-cells), smaller cells (i.e., micro-cells), and even very small cells (pico-cells or femto-cells).
- the pico-cells and femto-cells are typically deployed quickly and often at non-ideal locations. They may also be re-positioned quite often by the location owners, without knowledge of the operator.
- the conventional centralized PCI optimization approach would be unsuitable for this heterogeneous network use case, for the reasons stated above.
- the proposed self-organized PCI optimization method is desirable because of its simplicity, agility, and robustness. Because of the automated self-optimization, the distributed techniques will eliminate the huge effort of LTE PCI planning and optimization to the operator, allowing for greater speed and flexibility to LTE deployments, while providing optimized LTE performance. Through the exemplary embodiments herein, LTE PCI management, which has been considered to be quite tedious, would be a much easier endeavor. In addition, the exemplary distributed techniques herein could be a key component for Distributed Self-Organizing Network (SON) features.
- SON Distributed Self-Organizing Network
- FIG. 7 illustrates the operation of an exemplary method, a result of execution of computer program instructions embodied on a computer readable memory, functions performed by logic implemented in hardware, and/or interconnected means for performing functions in accordance with an exemplary embodiment.
- the blocks in FIG. 7 are assumed to be performed by an eNB 180.
- the eNB 180 assigns PCIs to cells for the eNB. Each assignment is a combination of PCI and center frequency.
- the eNB 180 updates its neighbor list for the eNB using the assigned PCIs and center frequencies.
- the eNB 180 uses the assigned PCIs to communicate with UEs for the cells of the eNB.
- the eNB 180 if requested, sends the updated neighbor list to neighbor eNBs requesting the list.
- An apparatus may comprise means for performing any or all of the blocks in FIG. 7.
- Example 2 The method of method 700, wherein: the plurality of pairs of cells is a first plurality of pairs of cells; the determining the interference for the plurality of pairs of cells determines a first matrix; the method further comprises receiving second matrices from neighbor cells neighboring the one or more serving cells, each of the second matrices having interference for a second plurality of pairs of cells, wherein each second pair of cells is between an individual one of the neighbor cells and an individual one of other cells that surround the individual one of the neighbor cells; and allocating, at the base station, values for physical cell identifications for the one or more serving cells is based on the first matrix and the second matrices.
- the values for the physical cell identifications for the one or more serving cells are p opt , which is determined by the G c/ that makes the equation in the problem true.
- Example 4 The method 700 or the method of Example 2, wherein the allocating, at the base station, values for physical cell identifications for the one or more serving cells determines final values and comprises: allocating, at the base station, first values for physical cell identifications for the one or more serving cells based on minimizing same physical cell identification modulo 30 collisions; and performing, at the base station, a general allocating of the first values for physical cell identifications for the one or more serving cells constrained by the allocated first values in order to determine the final values.
- Example 5 The method of Example 4, wherein the allocating, at the base station, values for physical cell identifications for the one or more serving cells comprises: allocating, at the base station, second values for physical cell identifications for the one or more serving cells based on minimizing same physical cell identification modulo 6 collisions; allocating, at the base station and constrained by the allocated second values, the first values for physical cell identifications for the one or more serving cells based on minimizing same physical cell identification modulo 30 collisions.
- Example 6 The method of Example 5, wherein the allocating, at the base station, values for physical cell identifications for the one or more serving cells comprises: allocating, at the base station, third values for physical cell identifications for the one or more serving cells based on minimizing same physical cell identification modulo 3 collisions;
- Example 7 The method 700 or any of the methods of Examples 2 to 6, wherein determining, at a base station in a wireless network, interference for a plurality of pairs of cells further comprises: collecting, at the base station, measurement report data from a plurality of user equipment in one or more serving cells, wherein the measurement report data comprise measurements of signal strength of measured cells relative to the user equipment and corresponding identities of the measured cells, and wherein the measured cells comprise the one or more serving cells and the other cells; mapping the signal strengths to the plurality of pairs of cells; and determining the interference for the plurality of pairs of cells based on the mapped signal strengths.
- R- e TM ⁇ (t) a k'th other cell measurement of the pair for the current period t is denoted by R° ⁇ j* (t) .
- Example 9 The method 700 or any of the methods of Examples 2 to 8, wherein the other cells comprise one or more of the following: neighbor cells,
- neighbor-of-neighbor cells or other cells which have measurements but are not yet designated as neighbors or are not yet designated as neighbor-of-neighbors.
- Another exemplary embodiment is an apparatus comprising means for performing method 700 or any of the Examples 2 to 9.
- Another example is an apparatus comprising one or more processors; and one or more memories including computer program code. The one or more memories and the computer program code are configured, with the one or more processors, to cause the apparatus to perform method 700 or any of the Examples 2 to 9.
- Embodiments herein may be implemented in software (executed by one or more processors), hardware (e.g., an application specific integrated circuit), or a combination of software and hardware.
- the software e.g., application logic, an instruction set
- a "computer-readable medium” may be any media or means that can contain, store, communicate, propagate or transport the instructions for use by or in connection with an instruction execution system, apparatus, or device, such as a computer, with one example of a computer described and depicted, e.g., in FIG. 1.
- a computer-readable medium may comprise a computer-readable storage medium (e.g., memories 125, 155, 171 or other device) that may be any media or means that can contain or store the instructions for use by or in connection with an instruction execution system, apparatus, or device, such as a computer.
- a computer-readable storage medium e.g., memories 125, 155, 171 or other device
- the different functions discussed herein may be performed in a different order and/or concurrently with each other. Furthermore, if desired, one or more of the above-described functions may be optional or may be combined.
- eNB or eNodeB base station e.g., for LTE
- evolved Node B evolved Node B
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Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201361911732P | 2013-12-04 | 2013-12-04 | |
| PCT/EP2014/076480 WO2015082577A1 (en) | 2013-12-04 | 2014-12-04 | Self-organized distributed assignment, optimization, and use of physical cell ids |
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| Publication Number | Publication Date |
|---|---|
| EP3078223A1 true EP3078223A1 (en) | 2016-10-12 |
| EP3078223B1 EP3078223B1 (en) | 2021-02-17 |
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| EP14809804.9A Not-in-force EP3078223B1 (en) | 2013-12-04 | 2014-12-04 | Self-organized distributed assignment, optimization, and use of physical cell ids |
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| Country | Link |
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| US (1) | US9432167B2 (en) |
| EP (1) | EP3078223B1 (en) |
| JP (1) | JP6282740B2 (en) |
| CN (1) | CN105940702B (en) |
| WO (1) | WO2015082577A1 (en) |
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| CN115333694B (en) * | 2021-05-10 | 2024-05-31 | 维沃移动通信有限公司 | CSI measurement resource processing method and device, terminal and readable storage medium |
| KR102804781B1 (en) * | 2021-08-13 | 2025-05-13 | 주식회사 케이티 | Method, network management apparatus and computer program for designing pci considering multi-mod |
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| US8838090B2 (en) * | 2009-01-15 | 2014-09-16 | Telefonaktiebolaget Lm Ericsson (Publ) | Automatic detection and correction of physical cell identity conflicts |
| CN101888622B (en) * | 2009-05-14 | 2015-06-10 | 株式会社Ntt都科摩 | Method and device for distributing physical layer cell identifiers |
| CN102196442A (en) * | 2010-03-02 | 2011-09-21 | 中兴通讯股份有限公司 | Physical cell ID allocating method and device |
| CN102421101B (en) * | 2011-12-31 | 2013-11-20 | 北京邮电大学 | Method for self-configuring physical cell identifiers (PCI) |
| US9007935B2 (en) * | 2012-02-16 | 2015-04-14 | Nokia Solutions And Networks Oy | Environmental aware PCI management |
| US9628215B2 (en) * | 2012-08-01 | 2017-04-18 | Nokia Solutions And Networks Oy | Cell-specific reference signal interference cancellation improvement |
| WO2014086394A1 (en) | 2012-12-04 | 2014-06-12 | Nokia Solutions And Networks Oy | Algorithm for physical cell identifier allocation |
| CN104956709B (en) | 2012-12-04 | 2019-04-12 | 诺基亚通信公司 | The distribution of Physical Cell Identifier |
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- 2014-12-04 CN CN201480074876.9A patent/CN105940702B/en not_active Expired - Fee Related
- 2014-12-04 US US14/560,134 patent/US9432167B2/en active Active
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN110169129A (en) * | 2016-11-15 | 2019-08-23 | 瑞典爱立信有限公司 | Handle neighborhood |
| CN110169129B (en) * | 2016-11-15 | 2021-11-05 | 瑞典爱立信有限公司 | Handling neighbor relationships |
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| EP3078223B1 (en) | 2021-02-17 |
| US9432167B2 (en) | 2016-08-30 |
| US20150155996A1 (en) | 2015-06-04 |
| WO2015082577A1 (en) | 2015-06-11 |
| CN105940702B (en) | 2019-08-06 |
| CN105940702A (en) | 2016-09-14 |
| JP2017502578A (en) | 2017-01-19 |
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